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A Mossbauer spectral study of the GdCo_(4-x)Fe_(x)B compounds

机译:GdCo_(4-x)Fe_(x)B化合物的Mossbauer光谱研究

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摘要

The iron-57 Mossbauer spectra of the GdCo_(4-x)Fe_(x)B compounds, where x is 0.10, 0.15, 0.20, 0.25, 1, 2, 2.5, and 2.6, have been measured at room temperature and reveal relatively small iron hyperfine fields of approximately 12-18 T, relatively large quadrupole interactions of approximately +0.9 and -1 mm/s, and three very different types of spectra for x(velence)0.10 and 0.15, x(velence)0.25, 1, and 2, and x(velence)2.5 and 2.6. The differences result from both the different easy magnetization directions in these compounds and the different cobalt and/or iron occupancies of the crystallographic 2c and 6i sites. The spectra have been fitted by calculating the spectral absorption with the complete iron-57 nuclear excited state Hamiltonian for the iron 2c and 6i sites. The fits have used an asymmetry parameter eta and Euler angles theta and phi that relate the hyperfine field to the iron electric field gradient axes of each crystallographic site in an orientation that is consistent with the structural and magnetic properties of the site. The results of the fits indicate both that the full Hamiltonian approach is required for physically reasonable spectral fits and that the small observed fields result from the presence of large orbital contributions which subtract from the Fermi contact contributions to the magnetic hyperfine fields of the two sites. The iron 2c occupancy obtained from the Mossbauer spectral area has been used to model the compositional dependence of the magnetic anisotropy constant in the GdCo_(4-x)Fe_(x)B compounds.
机译:在室温下测量了 GdCo_(4-x)Fe_(x)B 化合物的铁 57 Mossbauer 光谱,其中 x 为 0.10、0.15、0.20、0.25、1、2、2.5 和 2.6,揭示了相对较小的铁超精细场(约 12-18 T)、相对较大的四极杆相互作用(约 +0.9 和 -1 mm/s)以及 x(velence)0.10 和 0.15 的三种非常不同类型的光谱, x(velence)0.25、1 和 2,以及 x(velence)2.5 和 2.6。这些差异是由于这些化合物中不同的易磁化方向以及晶体学 2c 和 6i 位点的不同钴和/或铁占据所致。通过计算铁 2c 和 6i 位点的完全铁 57 核激发态哈密顿量的光谱吸收来拟合光谱。拟合使用了不对称参数 eta 和欧拉角、θ 和 phi,它们以与该位点的结构和磁性一致的方向将超精细场与每个晶体学位点的铁电场梯度轴相关联。拟合的结果表明,物理上合理的光谱拟合需要完整的哈密顿方法,并且观测到的小场是由于存在大轨道贡献而产生的,这些轨道贡献从费米接触中减去了对两个站点的磁超精细场的贡献。从Mossbauer光谱区获得的铁2c占有率已用于模拟GdCo_(4-x)Fe_(x)B化合物中磁各向异性常数的成分依赖性。

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